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Time-Symmetry Breaking in Hamiltonian Mechanics. Part II. A Memoir for Berni Julian Alder [1925–2020]

机译:汉密尔顿力学中的时间对称。第二部分。伯尼朱利安桤木的回忆录[1925-2020]

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This memoir honors the late Berni Julian Alder, who inspired both of us with his pioneering development of molecular dynamics. Berni’s work with Tom Wainwright, described in the 1959 Scientific American [1], brought Bill to interview at Livermore in 1962. Hired by Berni, Bill enjoyed over 40 years’ research at the Laboratory. Berni, along with Edward Teller, founded UC’s Department of Applied Science in 1963. Their motivation was to attract bright students to use the laboratory’s unparalleled research facilities. In 1972 Carol was offered a joint LLNL employee-DAS student appointment at Livermore. Bill, thanks to Berni’s efforts, was already a Professor there. Berni’s influence was directly responsible for our physics collaboration and our marriage in 1989. The present work is devoted to two early interests of Berni’s, irreversibility and shockwaves. Berni and Tom studied the irreversibility of Boltzmann’s “H function” in the early 1950s [2]. Berni called shockwaves the “most irreversible” of hydrodynamic processes [3]. Just this past summer, in simulating shockwaves with time-reversible classical mechanics, we found that reversed Runge-Kutta shockwave simulations yielded nonsteady rarefaction waves, not shocks. Intrigued by this unexpected result we studied the exponential Lyapunov instabilities in both wave types. Besides the Runge-Kutta and Leapfrog algorithms, we developed a precisely-reversible manybody algorithm based on trajectory storing, just changing the velocities’ signs to generate the reversed trajectories. Both shocks and rarefactions were precisely reversed. Separate simulations, forward and reversed, provide interesting examples of the Lyapunov-unstable symmetry-breaking models supporting the Second Law of Thermodynamics. We describe promising research directions suggested by this work.
机译:这位回忆录荣誉伯尼朱利安桤木,他通过他的分子动力学的开创性发展启发了我们。 Berni与Tom Wainwright合作,在1959年的科学美国人[1]中描述,1962年提交了在Livermore采访的法案。由Berni聘用,比尔在实验室享有40多年的研究。 Berni以及Edward Teller于1963年创立了UC的应用科学系。他们的动机是吸引明亮的学生,使用实验室的无与伦比的研究设施。 1972年,Carol在Livermore提供了LLNL员工-DAS学生预约。比尔,感谢伯尼的努力,已经是那里的教授。伯尼的影响力直接负责我们的物理合作和我们的婚姻于1989年。目前的工作致力于伯尼,不可逆转和冲击力的两个早期利益。伯尼和汤姆研究了20世纪50年代初的Boltzmann的“H函数”的不可逆转性[2]。伯尼称为Shockwaves流体动力学过程的“最不可逆转”[3]。就在过去的夏天,在模拟具有时间可逆经典机制的冲击波,我们发现逆转跳动库冲击波仿真产生了不稳定的稀疏波,而不是冲击。通过这种意外结果感兴趣,我们研究了两种波浪类型的指数Lyapunov稳定性。除了Runge-Kutta和LeapFrog算法之外,我们还开发了一种基于轨迹存储的精确可逆的多能算法,刚刚改变速度标志来生成反向轨迹。震动和稀疏都精确逆转。单独的模拟,向前和逆转,提供支持第二热力学定律的Lyapunov-Unstable对称模型的有趣示例。我们描述了这项工作建议的有前途的研究方向。

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